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Pixon-based image segmentation with Markov random fields

机译:具有Markov随机场的基于Pixon的图像分割

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摘要

Image segmentation is an essential processing step for many image analysis applications. We propose a novel pixon-based adaptive scale method for image segmentation. The key idea of our approach is that a pixon-based image model is combined with a Markov random field (MRF) model under a Bayesian framework. We introduce a new pixon scheme that is more suitable for image segmentation than the "fuzzy" pixon scheme. The anisotropic diffusion equation is successfully used to form the pixons in our new pixon scheme. Experimental results demonstrate that our algorithm performs fairly well and computational costs decrease dramatically compared with the pixel-based MRF algorithm.
机译:图像分割是许多图像分析应用程序中必不可少的处理步骤。我们提出了一种新颖的基于像素的自适应缩放方法进行图像分割。我们方法的关键思想是在贝叶斯框架下将基于像素的图像模型与马尔可夫随机场(MRF)模型相结合。我们引入了一种新的pixon方案,它比“ fuzzy” pixon方案更适合于图像分割。各向异性扩散方程已成功用于新的pixon方案中的pixon。实验结果表明,与基于像素的MRF算法相比,我们的算法性能良好,计算成本大大降低。

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